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Adropin as a potential marker of enzyme-positive acute coronary syndrome
Suna Aydin1, Mehmet Nesimi Eren2, Musa Yilmaz3
1Department of Anatomy - Cardiovascular Surgery, Elazig Education and Research Hospital, Elazig, Turkey.
Insights
Adropin, a protein produced by heart cells, is released into the blood and saliva during acute coronary syndrome (ACS). Measuring adropin levels in serum and saliva may help diagnose ACS.
Area of Science:
- Biochemistry
- Cardiology
- Biomarkers
Background:
- Acute coronary syndrome (ACS) involves myocardial injury due to prolonged ischemia.
- Recent studies show cardiomyocytes produce adropin, similar to liver and brain cells.
- Adropin's role in myocardial injury and its release during ACS requires investigation.
Purpose of the Study:
- To investigate the release of adropin in human subjects during acute coronary syndrome (ACS).
- To determine if adropin levels in serum and saliva correlate with myocardial injury.
- To assess the diagnostic potential of adropin as a biomarker for enzyme-positive acute coronary syndrome (EPACS).
Main Methods:
- Collected serum and saliva samples from 22 EPACS patients and 24 controls over three days.
- Utilized immunohistochemistry to screen major salivary glands for adropin production.
- Measured serum and saliva adropin levels using enzyme-linked immunosorbent assay (ELISA).
Main Results:
- Serum and saliva adropin levels increased in EPACS patients compared to controls up to six hours post-admission.
- Troponin I levels continued to rise up to 12 hours, while adropin levels began to decrease after six hours.
- Serum adropin showed 91.7% sensitivity and 50% specificity for EPACS at four hours; saliva adropin showed 91.7% sensitivity and 57% specificity.
Conclusions:
- Adropin is released into serum and saliva during myocardial injury in EPACS.
- Saliva and serum adropin levels show potential as diagnostic markers for EPACS.
- Adropin measurement, alongside troponin and CK-MB, could enhance ACS diagnosis.
Aim:
Enzyme-positive acute coronary syndrome (EPACS) can cause injury to or death of the heart muscle owing to prolonged ischaemia. Recent research has indicated that in addition to liver and brain cells, cardiomyocytes also produce adropin. We hypothesised that adropin is released into the bloodstream during myocardial injury caused by acute coronary syndrome (ACS), so serum and saliva levels rise as the myocytes die. Therefore, it could be useful to investigate how ACS affects the timing and significance of adropin release in human subjects.
Methods:
Samples were taken over three days after admission, from 22 EPACS patients and 24 age- and gendermatched controls. The three major salivary glands (submandibular, sublingual and parotid) were immunohistochemically screened for adropin production, and serum and saliva adropin levels were measured by an enzyme-linked immunosorbent assay (ELISA). Salivary gland cells produce and secrete adropin locally.
Results:
Serum adropin, troponin I, CK and CK-MB concentrations in the EPACS group became gradually higher than those in the control group up to six hours (p < 0.05), and troponin I continued to rise up to 12 hours after EPACS. The same relative increase in adropin level was observed in the saliva. Troponin I, CK and CK-MB levels started to decrease after 12 hours, while saliva and serum adropin levels started to decrease at six hours after EPACS. In samples taken four hours after EPACS, when the serum adropin value averaged 4.43 ng/ml, the receiver operating characteristic curve showed that the serum adropin concentration indicated EPACS with 91.7% sensitivity and 50% specificity, while when the cut-off adropin value in saliva was 4.12 ng/ml, the saliva adropin concentration indicated EPACS with 91.7% sensitivity and 57% specificity.
Conclusion:
In addition to cardiac troponin and CK-MB assays, measurement of adropin level in saliva and serum samples is a potential marker for diagnosing EPACS.
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